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DNA Polymerase-Directed Hairpin Assembly for Targeted Drug Delivery and Amplified Biosensing

机译:DNA聚合酶指导的发夹组装,用于靶向药物输送和放大的生物传感

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Due to the predictable conformation and programmable Watson Crick base-pairing interactions, DNA has proven to be an attractive material to construct various nanostructures. Herein, we demonstrate a simple model of DNA polymerase-directed hairpin assembly (PDHA) to construct DNA nanoassemblies for versatile applications in biomedicine and biosensing. The system consists of only two hairpins, an initiator and a DNA polymerase. Upon addition of aptamer-linked initiator, the inert stems of the two hairpins are activated alternately under the direction of DNA polymerase, which thus grows into aptamer-tethered DNA nanoassemblies (AptNAs). Moreover, through incorporating fluorophores and drug-loading sites into the AptNAs, we have constructed multifunctional DNA nanoassemblies for targeted cancer therapy with high drug payloads and good biocompatibility. Interestingly, using the as-prepared AptNAs as building blocks, DNA nanohydrogels are self assembled after centrifugation driven by liquid crystallization and dense packaging of DNA duplexes. Taking advantage of easy preparation and high loading capacity, the PDHAs are readily extended to the fabrication of a label-free biosensing platform, achieving amplified electrochemical detection of microRNA-21 (miR-21) with a detection limit as low as 0.75 fM and a dynamic range of 8 orders of magnitude. This biosensor also demonstrates excellent specificity to discriminate the target miR-21 from the control microRNAs and even the one-base mismatched one and further performs well in analyzing miR-21 in MCF-7 tumor cells.
机译:由于可预测的构象和可编程的Watson Crick碱基配对相互作用,DNA已被证明是构建各种纳米结构的诱人材料。在这里,我们演示了一个简单的DNA聚合酶定向发夹装配体(PDHA)模型,以构建在生物医学和生物传感领域的通用应用的DNA纳米装配体。该系统仅包含两个发夹,一个启动子和一个DNA聚合酶。加入适体连接的引发剂后,两个发夹的惰性茎在DNA聚合酶的指导下交替激活,从而长成适体连接的DNA纳米组件(AptNA)。此外,通过将荧光团和载药位点整合到AptNA中,我们构建了多功能DNA纳米组件,用于具有高载药量和良好生物相容性的靶向癌症治疗。有趣的是,使用制备的AptNA作为构建基块,DNA纳米水凝胶在离心作用下通过液晶双链和DNA双链体的紧密包装而自组装。利用易于制备和高负载能力的优势,PDHA易于扩展至无标记生物传感平台的制造,实现了microRNA-21(miR-21)的放大电化学检测,检测限低至0.75 fM,并且动态范围为8个数量级。这种生物传感器还表现出出色的特异性,可将靶标miR-21与对照microRNA甚至一碱基错配区分开,并在分析MCF-7肿瘤细胞中的miR-21方面表现出色。

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